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CRISPR/Cas9 介导的极端 C 端修饰可削弱 PDGF 刺激的 Duox2 活性。

CRISPR/Cas9-mediated modification of the extreme C-terminus impairs PDGF-stimulated activity of Duox2.

机构信息

Department of Biochemistry and Molecular Medicine, Faculty of Fundamental Medicine, M.V. Lomonosov Moscow State University, Lomonosovsky ave, 27-1, Moscow 119991, Russia.

M.V. Lomonosov Moscow State University Medical Center, Lomonosovsky ave, 27-10, Moscow 119991, Russia.

出版信息

Biol Chem. 2018 Apr 25;399(5):437-446. doi: 10.1515/hsz-2017-0229.

Abstract

Duox2 belongs to the large family of NADPH-oxidase enzymes that are implicated in immune response, vasoregulation, hormone synthesis, cell growth and differentiation via the regulated synthesis of H2O2 and reactive oxygen species. We and others have shown that Duox2 and H2O2 are involved in platelet-derived growth factor (PDGF) induced migration of fibroblasts. Now, using the CRISPR/Cas9-mediated genome editing we demonstrate that the extreme C-terminal region of Duox2 is required for PDGF-stimulated activity of Duox2 and H2O2 production. We generated the fibroblast cells that stably co-express the wild-type or C-terminally modified Duox2 and fluorescent H2O2 probe Hyper. We found that nonsense substitution of the last 23 amino acids in Duox2 results in complete loss of PDGF stimulation of intracellular H2O2 and fibroblast migration, yet these mutations have no effects on the expression of Duox2 and other NADPH-oxidases in cells. These findings illustrate for the first time that the extreme C-terminus of Duox2 is required for the functional activity of the enzyme. Furthermore, the conservative nature of the C-terminus suggests its role for activity in other NADPH-oxidases.

摘要

Duox2 属于 NADPH 氧化酶大家族,该酶家族通过调控 H2O2 和活性氧的合成,参与免疫反应、血管调节、激素合成、细胞生长和分化。我们和其他人已经表明,Duox2 和 H2O2 参与血小板衍生生长因子(PDGF)诱导的成纤维细胞迁移。现在,我们使用 CRISPR/Cas9 介导的基因组编辑证明,Duox2 的极端 C 末端区域是 PDGF 刺激 Duox2 活性和 H2O2 产生所必需的。我们生成了稳定共表达野生型或 C 末端修饰的 Duox2 和荧光 H2O2 探针 Hyper 的成纤维细胞。我们发现,Duox2 中最后 23 个氨基酸的无意义取代导致 PDGF 刺激细胞内 H2O2 和成纤维细胞迁移完全丧失,但这些突变对细胞中 Duox2 和其他 NADPH 氧化酶的表达没有影响。这些发现首次表明,Duox2 的极端 C 末端对于酶的功能活性是必需的。此外,C 末端的保守性质表明其在其他 NADPH 氧化酶中的活性作用。

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